INTERLAYER WITH NONUNIFORM SOLAR ABSORBER
The present invention includes interlayers and multiple layer glazing panels comprising those interlayers, wherein the interlayers comprise an infrared absorbing agent that is dispersed in the interlayer in a nonuniform distribution. The nonuniform distribution of the infrared absorbing agent allows the interlayer to be used successfully in applications in which transmission of a minimal level of infrared radiation is desirable to allow for sensor communication through the glazing.
1 . A multiple layer glazing interlayer, comprising:
an infrared absorbing agent, wherein the distribution of said infrared absorbing agent in said interlayer has a degree of nonuniformity of greater than 10%.
2 . The interlayer of claim 1 , wherein said degree of nonuniformity is greater than 20%.
3 . The interlayer of claim 1 , wherein said interlayer comprises a first region and a second region, wherein said first region allows at least 15% transmission of infrared radiation at 880 nanometers and said second region allows less than 10% transmission of infrared radiation at 880 nanometers.
4 . The interlayer of claim 3 , wherein said first region allows at least 72% transmission of infrared radiation at 880 nanometers and said second region allows less than 23% transmission of infrared radiation at 880 nanometers.
5 . The interlayer of claim 4 , wherein said first region is a gradient region.
6 . The interlayer of claim 4 , wherein said first region is located within said second region.
7 . The interlayer of claim 1 , wherein said infrared absorbing agent is LaB 6 or cesium tungsten oxide.
8 . The interlayer of claim 1 , wherein said degree of nonuniformity is greater than 30%.
9 . The interlayer of claim 1 , wherein said infrared absorbing agent is cesium tungsten oxide.
10 . A multiple layer glazing comprising:
a multiple layer glazing interlayer, comprising:
an infrared absorbing agent, wherein the distribution of said infrared absorbing agent in said interlayer has a degree of nonuniformity of greater than 10%.
11 . The interlayer of claim 10 , wherein said degree of nonuniformity is greater than 20%.
12 . The interlayer of claim 10 , wherein said interlayer comprises a first region and a second region, wherein said first region allows at least 15% transmission of infrared radiation at 880 nanometers and said second region allows less than 10% transmission of infrared radiation at 880 nanometers.
13 . The interlayer of claim 12 , wherein said first region allows at least 72% transmission of infrared radiation at 880 nanometers and said second region allows less than 23% transmission of infrared radiation at 880 nanometers.
14 . The interlayer of claim 13 , wherein said first region is a gradient region.
15 . The interlayer of claim 13 , wherein said first region is located within said second region.
16 . The interlayer of claim 10 , wherein said infrared absorbing agent is LaB 6 or cesium tungsten oxide.
17 . The interlayer of claim 10 , wherein said degree of nonuniformity is greater than 30%.
18 . The interlayer of claim 10 , wherein said infrared absorbing agent is cesium tungsten oxide.